Mobile terminals including a built-in radio frequency test interface
A radio frequency test interface for an electronic device includes a circuit board that includes a radio frequency contact. An antenna includes a resilient member that urges the antenna to engage the radio frequency contact. A test connector includes a conductive contact and is configured to engage the resilient member so as to displace the antenna from the radio frequency contact to allow the conductive contact to engage the radio frequency contact.
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The present invention relates to electronic devices, such as mobile terminals, and more particularly, radio frequency test interfaces for electronic devices, such as mobile terminals.
External antenna connectors may facilitate testing of electronic devices, such as mobile terminals, by a allowing a technician to test the radio frequency performance of a device without removing the antenna. For example,
In some embodiments of the present invention, a radio frequency test interface for an electronic device includes a circuit board that includes a radio frequency contact and has an opening that extends therethrough. An antenna is configured to engage the radio frequency contact. A test connector includes a conductive contact that is configured to engage the radio frequency contact and a non-conductive post that is configured to be received through the opening in the circuit board to disengage the antenna from the radio frequency contact.
In other embodiments of the present invention, the radio frequency contact extends through the circuit board and the conductive contact is configured to engage the radio frequency contact on a first side of the circuit board and the antenna is configured to engage the radio frequency contact on a second side of the circuit board.
In other embodiments of the present invention, the antenna is a leaf-spring antenna.
In other embodiments of the present invention, the test connector is a spring-loaded test connector.
In other embodiments of the present invention, the circuit board further includes a ground contact and the conductive contact is a first conductive contact and the test connector further includes a second conductive contact that is configured to engage the ground contact.
In other embodiments of the present invention, the circuit board further includes a matching component contact. The antenna includes a first portion that is configured to engage the radio frequency contact and a second portion that is configured to engage the matching component contact. The non-conductive post is configured to be received through the opening in the circuit board to disengage the first antenna portion from the radio frequency contact and the second antenna portion from the matching component contact.
In other embodiments of the present invention, the circuit board further includes a ground contact. The antenna includes a first portion that is configured to engage the radio frequency contact and a second portion that is configured to engage the ground contact. The non-conductive post is configured to be received through the opening in the circuit board to disengage the first antenna portion from the radio frequency contact without disengaging the second antenna portion from the ground contact.
In other embodiments of the present invention, the antenna is a planar inverted F antenna.
In other embodiments of the present invention, the test connector is a 50 ohm test connector.
In other embodiments of the present invention, the electronic device is a mobile terminal.
In further embodiments of the present invention, a radio frequency test interface for an electronic device includes a circuit board that includes a radio frequency contact. An antenna includes a resilient member that urges the antenna to engage the radio frequency contact. A test connector includes a conductive contact and is configured to engage the resilient member so as to displace the antenna from the radio frequency contact to allow the conductive contact to engage the radio frequency contact.
In still further embodiments of the present invention, the resilient member includes a tapered portion and the test connector is configured to engage the tapered portion of the resilient member.
In still further embodiments of the present invention, an alignment structure is configured to receive the test connector therethrough so as to position the conductive contact in alignment with the radio frequency contact.
In still further embodiments of the present invention, the alignment structure comprises an opening in a housing of the electronic device.
In still further embodiments of the present invention, the circuit board further includes a ground contact and the conductive contact is a first conductive contact. The test connector further includes a second conductive contact that is configured to engage the ground contact.
In still further embodiments of the present invention, the circuit board further includes a matching component contact. The antenna includes a first portion that is configured to engage the radio frequency contact and a second portion that is configured to engage the matching component contact. The test connector is configured to engage the resilient member so as to displace the first antenna portion from the radio frequency contact and to displace the second antenna portion from the matching component contact.
In still further embodiments of the present invention, the circuit board further includes a ground contact. The antenna includes a first portion that is configured to engage the radio frequency contact and a second portion that is configured to engage the ground contact. The test connector is configured to engage the resilient member so as to displace the first antenna portion from the radio frequency contact without displacing the second antenna portion from the ground contact.
In other embodiments of the present invention, a radio frequency test interface for an electronic device includes a circuit board that includes a radio frequency contact and has an opening that extends therethrough. An antenna is configured to engage the radio frequency contact. A test connector includes a non-conductive contact that is configured to engage the radio frequency contact and a conductive post that is configured to be received through the opening in the circuit board to disengage the antenna from the radio frequency contact.
Specific exemplary embodiments of the invention now will be described with reference to the accompanying drawings. This invention may, however, be embodied in many different forms and should not be construed as limited to the embodiments set forth herein; rather, these embodiments are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the invention to those skilled in the art. The terminology used in the detailed description of the particular exemplary embodiments illustrated in the accompanying drawings is not intended to be limiting of the invention. In the drawings, like numbers refer to like elements.
As used herein, the singular forms “a,” “an,” and “the” are intended to include the plural forms as well, unless expressly stated otherwise. It will be further understood that the terms “includes,” “comprises,” “including,” and/or “comprising,” when used in this specification, specify the presence of stated features, integers, steps, operations, elements, and/or components, but do not preclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and/or groups thereof. It will be understood that when an element is referred to as being “connected” or “coupled” to another element, it can be directly connected or coupled to the other element or intervening elements may be present. Furthermore, “connected” or “coupled” as used herein may include wirelessly connected or coupled. As used herein, the term “and/or” includes any and all combinations of one or more of the associated listed items.
Unless otherwise defined, all terms (including technical and scientific terms) used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention belongs. It will be further understood that terms, such as those defined in commonly used dictionaries, should be interpreted as having a meaning that is consistent with their meaning in the context of the relevant art and will not be interpreted in an idealized or overly formal sense unless expressly so defined herein.
As used herein, the term “mobile terminal” may include a satellite or cellular radiotelephone with or without a multi-line display; a Personal Communications System (PCS) terminal that may combine a cellular radiotelephone with data processing, facsimile and data communications capabilities; a PDA that can include a radiotelephone, pager, Internet/intranet access, Web browser, organizer, calendar and/or a global positioning system (GPS) receiver; and a conventional laptop and/or palmtop receiver or other appliance that includes a radiotelephone transceiver. Mobile terminals may also be referred to as “pervasive computing” devices.
Some embodiments of the present invention arise from a realization that the cost of electronic devices, such as mobile terminals, that incorporate radio frequency technology may be reduced by providing a built-in radio frequency test interface so that an additional radio frequency test connector may be unnecessary. Referring now to
As shown in
In accordance with some embodiments of the present invention, the antenna may comprise a first portion 260 that is configured to engage and be disengaged from the radio frequency contact 205 and a second portion 270 that is configured to engage and be disengaged from a matching component contact 275 on the circuit board 200. The circuit board 200 may include impedance matching components thereon that may be used to tune the antenna for improved performance. These components are typically disconnected during radio frequency testing during manufacture or diagnostic testing. Thus, the non-conductive post 240 of the test connector 230 may also disengage the second portion 270 of the antenna from the matching component contact 275 when received through the opening 215. Note, however, that in other embodiments of the present invention, the second portion 270 may remain engaged with the matching component contact 275 upon insertion of the non-conducting post 240.
In accordance with further embodiments of the present invention, the antenna may comprise a third portion 280, instead of or in addition to the second portion 270 discussed above, that is configured to engage the ground contact 210 of the circuit board 200 or to ground a parasitic radiating element. This may be particular useful when the antenna is a planar inverted-F type antenna, which is a common antenna configuration used in many types of mobile terminals. This connection between the antenna portion 280 and the ground contact 210 need not be disconnected during radio frequency testing; therefore, the antenna portion 280 is configured so as to remain engaged with the ground contact 210 when the non-conductive post 240 of the test connector 230 is received through the opening 215.
An exemplary radio frequency test interface for an electronic device, in accordance with further embodiments of the present invention will now be described with reference to
Referring again to
Referring now to
Referring now to
Moreover, as discussed above with respect to
In accordance with further embodiments of the present invention, the antenna 315 may comprise a third portion, instead of or in addition to the second portion discussed above, that is configured to engage the ground contact 310 of the circuit board 300 or to ground a parasitic radiating element. This may be particular useful when the antenna 315 is a planar inverted-F type antenna. This connection between the third antenna portion and the ground contact 310 need not be disconnected during radio frequency testing; therefore, the third antenna portion is configured so as to remain engaged with the ground contact 310 when the test connector 350 engages the resilient member 320.
In the drawings and specification, there have been disclosed exemplary embodiments of the invention. Although specific terms are used, they are used in a generic and descriptive sense only and not for purposes of limitation, the scope of the invention being defined by the following claims.
Claims
1. A radio frequency test interface for an electronic device, comprising:
- a circuit board that comprises a radio frequency contact and having an opening that extends therethrough;
- an antenna that is configured to engage the radio frequency contact; and
- a test connector that comprises a conductive contact that is configured to engage the radio frequency contact and a non-conductive post that is configured to be received through the opening in the circuit board to disengage the antenna from the radio frequency contact.
2. The radio frequency test interface of claim 1, wherein the radio frequency contact extends through the circuit board and the conductive contact is configured to engage the radio frequency contact on a first side of the circuit board and the antenna is configured to engage the radio frequency contact on a second side of the circuit board.
3. The radio frequency test interface of claim 1, wherein the antenna comprises an antenna contact, which comprises a leaf-spring.
4. The radio frequency test interface of claim 1, wherein the test connector is a spring-loaded test connector.
5. The radio frequency test interface of claim 1, wherein the circuit board further comprises a ground contact and wherein the conductive contact is a first conductive contact and the test connector further comprises a second conductive contact that is configured to engage the ground contact.
6. The radio frequency test interface of claim 1, wherein the circuit board further comprises a matching component contact, wherein the antenna comprises a first portion that is configured to engage the radio frequency contact and a second portion that is configured to engage the matching component contact, and wherein the non-conductive post is configured to be received through the opening in the circuit board to disengage the first antenna portion from the radio frequency contact.
7. The radio frequency test interface of claim 1, wherein the circuit board further comprises a ground contact, wherein the antenna comprises a first portion that is configured to engage the radio frequency contact and a second portion that is configured to engage the ground contact, and wherein the non-conductive post is configured to be received through the opening in the circuit board to disengage the first antenna portion from the radio frequency contact.
8. The radio frequency test interface of claim 7, wherein the antenna is a planar inverted F antenna.
9. The radio frequency test interface of claim 1, wherein the test connector is a 50 ohm test connector.
10. The radio frequency test interface of claim 1, wherein the electronic device is a mobile terminal.
11. A radio frequency test interface for an electronic device, comprising:
- a circuit board that comprises a radio frequency contact;
- an antenna that comprises a resilient member that urges the antenna to engage the radio frequency contact; and
- a test connector that comprises a conductive contact and is configured to engage the resilient member so as to displace the antenna from the radio frequency contact to allow the conductive contact to engage the radio frequency contact.
12. The radio frequency test interface of claim 11, wherein the resilient member comprises a tapered portion and wherein the test connector is configured to engage the tapered portion of the resilient member.
13. The radio frequency test interface of claim 11, further comprising:
- an alignment structure that is configured to receive the test connector therethrough so as to position the conductive contact in alignment with the radio frequency contact.
14. The radio frequency test interface of claim 13, wherein the alignment structure comprises an opening in a housing of the electronic device.
15. The radio frequency test interface of claim 11, wherein the circuit board further comprises a ground contact and wherein the conductive contact is a first conductive contact and the test connector further comprises a second conductive contact that is configured to engage the ground contact.
16. The radio frequency test interface of claim 11, wherein the circuit board further comprises a matching component contact, wherein the antenna comprises a first portion that is configured to engage the radio frequency contact and a second portion that is configured to engage the matching component contact, and wherein the test connector is configured to engage the resilient member so as to displace the first antenna portion from the radio frequency contact.
17. The radio frequency test interface of claim 11, wherein the circuit board further comprises a ground contact, wherein the antenna comprises a first portion that is configured to engage the radio frequency contact and a second portion that is configured to engage the ground contact, and wherein the test connector is configured to engage the resilient member so as to displace the first antenna portion from the radio frequency contact.
18. The radio frequency test interface of claim 17, wherein the antenna is a planar inverted F antenna.
19. The radio frequency test interface of claim 11, wherein the test connector is a 50 ohm test connector.
20. The radio frequency test interface of claim 11, wherein the electronic device is a mobile terminal.
21. A radio frequency test interface for an electronic device, comprising:
- a circuit board that comprises a radio frequency contact and having an opening that extends therethrough;
- an antenna that is configured to engage the radio frequency contact; and
- a test connector that comprises a non-conductive contact that is configured to engage the radio frequency contact and a conductive post that is configured to be received through the opening in the circuit board to disengage the antenna from the radio frequency contact.
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Type: Grant
Filed: Dec 29, 2004
Date of Patent: Jan 9, 2007
Patent Publication Number: 20060139217
Assignee: Sony Ericsson Mobile Communications (Lund)
Inventor: Scott L. Vance (Cary, NC)
Primary Examiner: Tho Phan
Attorney: Myers Bigel Sibley & Sajovec, PA
Application Number: 11/024,595
International Classification: H01Q 1/24 (20060101); H01R 29/00 (20060101);